Far-field Wireless Power Transfer (WPT) has emerged as a potential power source for the Internet of Things (IoT) and Wireless Sensor Network (WSN).The expansion of the power transfer range is one of the key challenges to make the technology viable. In this paper, we experimentally study a channel-adaptive joint beamforming and waveform architecture to expand the power transfer range. WPT experiments have been conducted in a variety of wireless channels at various distances in a realistic indoor environment. The measurement data have been fitted using a simple analytical model to analyze the output DC power and achievable range improvement depending on the signal design schemes and the number of tones and antennas. The model shows a clear relationship between signal design versus output DC power and achievable range, and highlight the significant benefit of the proposed architecture to expand the power transfer range.
翻译:远野无线电源传输(WPT)已成为物联网和无线传感器网络(WSN)的潜在动力源。 电力传输范围的扩大是使技术可行的关键挑战之一。 在本文中,我们实验研究一个频道适应性联合波束和波形结构,以扩大电力传输范围。WPT实验是在现实的室内环境中在不同距离的各种无线频道中进行的。测量数据是使用一个简单的分析模型来分析DC的输出功率和可实现范围的改进,这取决于信号设计计划以及音量和天线的数量。模型显示了信号设计与DC输出功率和可实现的范围之间的明确关系,并突出了拟议结构在扩大电力传输范围方面的巨大好处。